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Towards motion insensitive EEG-fMRI: Correcting motion-induced voltages and gradient artefact instability in EEG using an fMRI prospective motion correction (PMC) system

机译:迈向对运动不敏感的脑电图功能磁共振成像:使用fMRI前瞻性运动校正(PMC)系统校正脑电图中的运动感应电压和梯度伪影不稳定性

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The simultaneous acquisition of electroencephalography and functional magnetic resonance imaging (EEG-fMRI) is a multimodal technique extensively applied for mapping the human brain. However, the quality of EEG data obtained within the MRI environment is strongly affected by subject motion due to the induction of voltages in addition to artefacts caused by the scanning gradients and the heartbeat. This has limited its application in populations such as paediatric patients or to study epileptic seizure onset. Recent work has used a Moire-phase grating and a MR-compatible camera to prospectively update image acquisition and improve fMRI quality (prospective motion correction: PMC). In this study, we use this technology to retrospectively reduce the spurious voltages induced by motion in the EEG data acquired inside the MRI scanner, with and without fMRI acquisitions. This was achieved by modelling induced voltages from the tracking system motion parameters; position and angles, their first derivative (velocities) and the velocity squared. This model was used to remove the voltages related to the detected motion via a linear regression. Since EEG quality during fMRI relies on a temporally stable gradient artefact (GA) template (calculated from averaging EEG epochs matched to scan volume or slice acquisition), this was evaluated in sessions both with and without motion contamination, and with and without PMC. We demonstrate that our approach is capable of significantly reducing motion-related artefact with a magnitude of up to 10 mm of translation, 6 degrees of rotation and velocities of 50 mm/s, while preserving physiological information. We also demonstrate that the EEG-GA variance is not increased by the gradient direction changes associated with PMC. Provided a scan slice-based GA template is used (rather than a scan volume GA template) we demonstrate that EEG variance during motion can be supressed towards levels found when subjects are still. In summary, we show that PMC can be used to dramatically improve EEG quality during large amplitude movements, while benefiting from previously reported improvements in fMRI quality, and does not affect EEG data quality in the absence of large amplitude movements. (C) 2016 The Authors. Published by Elsevier Inc.
机译:脑电图和功能磁共振成像(EEG-fMRI)的同时采集是一种广泛应用于人脑作图的多峰技术。但是,在MRI环境中获得的EEG数据的质量受对象运动的影响很大,除了扫描梯度和心跳引起的伪影外,还受到电压的感应。这限制了其在诸如小儿患者之类的人群中的应用或研究癫痫发作的发作。最近的工作已使用莫尔相位光栅和MR兼容相机来前瞻性地更新图像采集并改善fMRI质量(预期运动校正:PMC)。在这项研究中,我们使用这项技术来回顾性地减少在进行或不进行fMRI采集的情况下,在MRI扫描仪内部采集的EEG数据中由运动引起的寄生电压。这是通过根据跟踪系统运动参数对感应电压建模来实现的。位置和角度,它们的一阶导数(速度)和速度平方。该模型用于通过线性回归删除与检测到的运动相关的电压。由于fMRI期间的脑电图质量依赖于时间稳定的梯度伪影(GA)模板(根据与扫描量或切片采集相匹配的平均脑电图周期计算得出),因此在有无运动污染以及有无PMC的会话中进行了评估。我们证明了我们的方法能够以多达10毫米的平移,6度的旋转度和50毫米/秒的速度显着减少与运动有关的伪像,同时保留了生理信息。我们还证明,与PMC相关的梯度方向变化不会增加EEG-GA方差。如果使用了基于扫描切片的GA模板(而不是扫描体积GA模板),我们证明了运动过程中的EEG方差可以抑制到受试者静止时发现的水平。总而言之,我们表明PMC可用于大幅运动期间大幅改善EEG的质量,同时受益于先前报道的功能磁共振成像质量的改善,并且在没有大幅运动的情况下不会影响EEG数据质量。 (C)2016作者。由Elsevier Inc.发布

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